Theory of ac magnetoelectric transport in normal-metal $-$ magnetic-insulator heterostructures
Abstract
Electron-magnon coupling at the interface between a normal metal and a magnetically ordered insulator modifies the electrical conductivity of the normal metal, an effect known as spin-Hall magnetoresistance. It can also facilitate magnon-mediated current drag, the nonlocal electric current response of two normal metal layers separated by a magnetic insulator. In this article, we present a theory of these two spintronic effects and their nonlinear counterparts for time-dependent applied electric fields $E(\omega)$, with driving frequencies $\omega$ up to the THz regime. We compare various mechanisms leading to a quadratic-in-$E$ response $-$ Joule heating, spin-torque diode effect, and magnonic unidirectional spin-Hall magnetoresistance $-$ and show how these can be disentangled by their characteristic dependences on $\omega$ and the magnetization direction.
- Publication:
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arXiv e-prints
- Pub Date:
- August 2024
- DOI:
- arXiv:
- arXiv:2408.13099
- Bibcode:
- 2024arXiv240813099F
- Keywords:
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- Condensed Matter - Mesoscale and Nanoscale Physics
- E-Print:
- 22 + 6 pages, 9 figures